Rochal S B, Lorman V L, Mennessier G
Laboratoire de Physique Mathematique et Théorique, CNRS--Université Montpellier 2, Place Eugene Bataillon, 34095 Montpellier, France.
Phys Rev E Stat Nonlin Soft Matter Phys. 2005 Feb;71(2 Pt 1):021905. doi: 10.1103/PhysRevE.71.021905. Epub 2005 Feb 11.
A micromechanical model for the low-frequency dynamics of spherical composite vesicles (CVs) is proposed. Solid-like viscoelastic properties of the CVs are taken into account. The equations of motion of a CV surrounded by a viscous liquid are derived. They have discrete solutions which describe linearly coupled stretching and bending relaxation modes and an independent shear mode. The qualitative difference between the bending modes excited in a spherical vesicle and that in a flat membrane is demonstrated. The shear elasticity of the CVs gives an essential contribution to the relaxation rate of the bending mode at small wave numbers. It is also shown that even in an incompressible spherical vesicle with a finite shear modulus, the bending mode involves both radial and tangent displacements. These reasons make both in-plane and out-of-plane low-frequency responses of the CV quite different with respect to those of the flat membrane. To compare our theoretical results with published experimental data, the power spectra of the actin-coated CV are calculated.
提出了一种用于球形复合囊泡(CVs)低频动力学的微机械模型。考虑了CVs的类固体粘弹性特性。推导了被粘性液体包围的CV的运动方程。它们具有离散解,描述了线性耦合的拉伸和弯曲弛豫模式以及独立的剪切模式。证明了在球形囊泡和扁平膜中激发的弯曲模式之间的定性差异。CVs的剪切弹性对小波数下弯曲模式的弛豫速率有重要贡献。还表明,即使在具有有限剪切模量的不可压缩球形囊泡中,弯曲模式也涉及径向和切向位移。这些原因使得CV的面内和面外低频响应与扁平膜的响应有很大不同。为了将我们的理论结果与已发表的实验数据进行比较,计算了肌动蛋白包被的CV的功率谱。